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Three-Dimensional Constitutive Model Considering Transformation-Induced Damage and Resulting Fatigue Failure in Shape Memory Alloys

机译:考虑形状记忆合金相变诱发损伤和疲劳破坏的三维本构模型

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摘要

In this work, a constitutive model is developed that describe the behavior of shape memory alloys undergoing a large number of cycles, developing internal damage, and eventually failing. Physical mechanisms associated with martensitic phase transformation occurring during cyclic loadings such as transformation strain generation and recovery, transformation-induced plasticity, and fatigue damage are all taken into account within a thermo-dynamically consistent framework. Fatigue damage is described utilizing a continuum theory of damage. The damage growth rate has been formulated as a function of both the stress state and also the magnitude of the transformation strain, while the complete or partial nature of the transformation cycles is also considered as per experimental observations. Simulation results from the model developed are compared to uniaxial actuation fatigue tests at different stress levels. It is shown that both lifetime and the evolution irrecoverable strain can be accurately simulated.
机译:在这项工作中,本构模型被开发出来,该模型描述了形状记忆合金经历大量循环,内部损坏并最终失效的行为。在热力学一致的框架内,考虑了与循环加载过程中发生的马氏体相变相关的物理机制,例如相变应变的产生和恢复,相变诱发的可塑性和疲劳损伤。疲劳损伤是通过连续损伤理论来描述的。损伤生长率已被公式化为应力状态和相变应变大小的函数,而相变循环的全部或部分性质也根据实验观察来考虑。将所开发模型的仿真结果与在不同应力水平下的单轴驱动疲劳测试进行比较。结果表明,寿命和演化不可恢复的应变都可以被精确地模拟。

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